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Documenti fondamentali

C7252

Sigma-Aldrich

D-(+)-cellobiosio

≥98% (HPLC)

Sinonimo/i:

β-D-Glc-(1→4)-D-Glc, 4-O-β-D-glucopiranosil-D-glucosio

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About This Item

Formula empirica (notazione di Hill):
C12H22O11
Numero CAS:
Peso molecolare:
342.30
Beilstein:
93795
Numero CE:
Numero MDL:
Codice UNSPSC:
12352201
ID PubChem:
NACRES:
NA.21

Origine biologica

plant

Livello qualitativo

Saggio

≥98% (HPLC)

Stato

powder

Attività ottica

[α]/D 34±1, c = 10% (w/v) in water

tecniche

HPLC: suitable

Colore

beige

Punto di fusione

239 °C (dec.) (lit.)

Solubilità

water: 50 mg/mL, clear, colorless

Temperatura di conservazione

room temp

Stringa SMILE

OC[C@@H](O)[C@@H](O[C@@H]1O[C@H](CO)[C@@H](O)[C@H](O)[C@H]1O)[C@H](O)[C@@H](O)C=O

InChI

1S/C12H22O11/c13-1-4(16)7(18)11(5(17)2-14)23-12-10(21)9(20)8(19)6(3-15)22-12/h1,4-12,14-21H,2-3H2/t4-,5+,6+,7+,8+,9-,10+,11+,12-/m0/s1
DKXNBNKWCZZMJT-WELRSGGNSA-N

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Descrizione generale

Cellobiose, a disaccharide, is made up of two d-glucose molecules linked by a β-1,4-glycosidic bond. This reducing sugar can mutarotate and is produced by hydrolysis of cellulose.

Applicazioni

D-(+)-Cellobiose has been used:
  • as a component in test sugar solution for cellobiose-mannitol permeability test
  • in the preparation of lyophilization solutions to study its ability to protect lyophilized β-galactosidase from enzymatic activity loss and secondary structure changes during storage
  • as a fermentation/growth substrate to grow Clostridium thermocellum to study its impacts on the qualitative and quantitative changes in cellulosome composition

Altre note

To gain a comprehensive understanding of our extensive range of Disaccharides for your research, we encourage you to visit our Carbohydrates Category page.

Codice della classe di stoccaggio

11 - Combustible Solids

Classe di pericolosità dell'acqua (WGK)

WGK 1

Punto d’infiammabilità (°F)

Not applicable

Punto d’infiammabilità (°C)

Not applicable

Dispositivi di protezione individuale

Eyeshields, Gloves, type N95 (US)


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Mireia Lopez-Siles et al.
Applied and environmental microbiology, 78(2), 420-428 (2011-11-22)
Faecalibacterium prausnitzii is one of the most abundant commensal bacteria in the healthy human large intestine, but information on genetic diversity and substrate utilization is limited. Here, we examine the phylogeny, phenotypic characteristics, and influence of gut environmental factors on
David Scholz et al.
ChemSusChem, 11(13), 2189-2201 (2018-05-08)
The deactivation pathways of sulfonated carbon catalysts prepared from different carbons were studied during the aqueous-phase hydrolysis of cellobiose under continuous-flow conditions. The sulfonation of carbon materials with a low degree of graphitization introduced sulfonic acid groups that are partially
Linchao Zhou et al.
Royal Society open science, 5(6), 171529-171529 (2018-08-16)
Removing alkali-soluble lignin using extractive ammonia (EA) pretreatment of corn stover (CS) is known to improve biomass conversion efficiency during enzymatic hydrolysis. In this study, we investigated the effect of alkali-soluble lignin on six purified core glycosyl hydrolases and their
Babu Raman et al.
PloS one, 4(4), e5271-e5271 (2009-04-23)
Economic feasibility and sustainability of lignocellulosic ethanol production requires the development of robust microorganisms that can efficiently degrade and convert plant biomass to ethanol. The anaerobic thermophilic bacterium Clostridium thermocellum is a candidate microorganism as it is capable of hydrolyzing
Stuart M Linton et al.
Journal of comparative physiology. B, Biochemical, systemic, and environmental physiology, 184(4), 449-468 (2014-02-26)
The digestive ability of four sympatric land crabs species (the gecarcinids, Gecarcoidea natalis and Discoplax celeste and the anomurans, Birgus latro and Coenobita perlatus) was examined by determining the activity of their digestive enzymes. The gecarcinids are detritivores that consume

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